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March 14, 2026Molecular Biology of the Cell4 citations

Matrix stiffness and stress relaxation regulate osteogenesis through histone demethylases KDM4B and KDM6B

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ITIan M. TaylerAZAmy ZhuASAbhishek Sharma

Key Points

  • The research aims to explore how matrix stiffness and stress relaxation affect histone demethylase activity during osteogenesis.
  • Utilized alginate hydrogels with varying mechanical properties.
  • Investigated gene expression changes in human bone marrow-derived mesenchymal stem cells.
  • Performed CUT&Tag profiling and RNA-sequencing to analyze histone methylation.
  • Examined the impact of inhibiting mechanotransduction pathways.
  • Histone demethylases KDM4B and KDM6B were upregulated in stiff, fast-relaxing matrices.
  • Repressive histone methylation decreased at osteogenic-specific loci under mechanical conditions.
  • Inhibition of mechanotransduction reduced expression of KDM4B and KDM6B, hindering osteogenic differentiation.
  • Phosphorylation of SMAD 1/5/8 increased in stiff matrices, and its inhibition reduced KDM4B and KDM6B expression.

Abstract

Stem cells sense biophysical cues within their extracellular microenvironment and respond via mechanotransduction signaling pathways that induce changes in gene expression and associated cell fate outcomes. Histone modifying enzymes are known to drive stem cell differentiation through changes in chromatin accessibility, but little is understood as to how extracellular matrix (ECM) mechanics regulate epigenomic remodeling. Here, we utilized alginate hydrogels with tunable mechanical properties to investigate the role of both matrix stiffness and stress relaxation on histone demethylase expression and activity during osteogenic differentiation of human bone marrow-derived mesenchymal stem cells (hBMSCs). Our results revealed that the expression of two histone demethylases, KDM4B and KDM6B, was upregulated during osteogenesis in response to stiff and fast stress-relaxing matrix conditions. Additionally, CUT&Tag profiling coupled with RNA-sequencing demonstrated that repressive histone methylation was decreased at osteogenic-specific loci in stiff, fast-relaxing matrices. Further, inhibition of mechanotransduction signaling pathways reduced expression of KDM4B and KDM6B and hindered osteogenic differentiation overall. Interestingly, phosphorylation of SMAD 1/5/8 increased in cells cultured in stiff, stress relaxing matrices, and pharmacological inhibition of SMAD 1/5/8 activation reduced expression of KDM4B and KDM6B. Together, our results establish novel impacts of stem cell mechanotransduction signaling events that promote osteogenesis through epigenetic remodeling.

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Cite This Study

Tayler et al. (2026) studied this question.

synapsesocial.com/papers/69b4fbc1b39f7826a300c28bhttps://doi.org/10.1091/mbc.e25-07-0331
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